Literature DB >> 32876686

Commissioning of total body irradiation using plastic bead bags.

Yuichi Akino1,2, Shintaro Maruoka2, Katsuyuki Yano2, Hiroshi Abe2, Fumiaki Isohashi3, Yuji Seo3, Keisuke Tamari3, Takero Hirata3, Manabu Kawakami2, Yoshiki Nakae2, Yoshihiro Tanaka4, Kazuhiko Ogawa3.   

Abstract

The goal of total body irradiation (TBI) is to deliver a dose to the whole body with uniformity within ±10%. The purpose of this study was to establish the technique of TBI using plastic bead bags. A lifting TBI bed, Model ORP-TBI-MN, was used. The space between the patient's body and the acrylic walls of the bed was filled with polyacetal bead bags. Patients were irradiated by a 10 MV photon beam with a source to mid-plane distance of 400 cm. The monitor unit (MU) was calculated by dose-per-MU, tissue-phantom-ratio and a spoiler factor measured in solid water using an ionization chamber. The phantom-scatter correction factor, off-center ratio and the effective density of the beads were also measured. Diode detectors were used for in vivo dosimetry (IVD). The effective density of the beads was 0.90 ± 0.09. The point doses calculated in an I'mRT phantom with and without heterogeneity material showed good agreement, with measurements within 3%. An end-to-end test was performed using a RANDO phantom. The mean ± SD (range) of the differences between the calculated and IVD-measured mid-plane doses was 1.1 ± 4.8% (-5.9 to 5.0%). The differences between the IVD-measured doses and the doses calculated with Acuros XB of the Eclipse treatment planning system (TPS) were within 5%. For two patients treated with this method, the differences between the calculated and IVD-measured doses were within ±6% when excluding the chest region. We have established the technique of TBI using plastic bead bags. The TPS may be useful to roughly estimate patient dose.
© The Author(s) 2020. Published by Oxford University Press on behalf of The Japanese Radiation Research Society and Japanese Society for Radiation Oncology.

Entities:  

Keywords:  zzm321990 in vivo dosimetry; Acuros XB; total body irradiation; treatment planning

Year:  2020        PMID: 32876686      PMCID: PMC7674696          DOI: 10.1093/jrr/rraa072

Source DB:  PubMed          Journal:  J Radiat Res        ISSN: 0449-3060            Impact factor:   2.724


  23 in total

1.  Phase 1/2 trial of total marrow and lymph node irradiation to augment reduced-intensity transplantation for advanced hematologic malignancies.

Authors:  Joseph Rosenthal; Jeffrey Wong; Anthony Stein; Dajun Qian; Debbie Hitt; Hossameldin Naeem; Andrew Dagis; Sandra H Thomas; Stephen Forman
Journal:  Blood       Date:  2010-09-28       Impact factor: 22.113

2.  Survival, disease-free survival and adverse effects of conditioning for allogeneic bone marrow transplantation with busulfan/cyclophosphamide vs total body irradiation: a meta-analysis.

Authors:  A R Hartman; S F Williams; J J Dillon
Journal:  Bone Marrow Transplant       Date:  1998-09       Impact factor: 5.483

3.  A practical approach to uniform total body photon irradiation.

Authors:  M J Engler
Journal:  Int J Radiat Oncol Biol Phys       Date:  1986-11       Impact factor: 7.038

4.  Total body irradiation with a compensator fabricated using a 3D optical scanner and a 3D printer.

Authors:  So-Yeon Park; Jung-In Kim; Yoon Ha Joo; Jung Chan Lee; Jong Min Park
Journal:  Phys Med Biol       Date:  2017-03-22       Impact factor: 3.609

5.  American College of Radiology (ACR) and American Society for Radiation Oncology (ASTRO) practice guideline for the performance of total body irradiation (TBI).

Authors:  Suzanne L Wolden; Rachel A Rabinovitch; Nathan H J Bittner; James M Galvin; Huan B Giap; Paula J Schomberg; Seth A Rosenthal
Journal:  Am J Clin Oncol       Date:  2013-02       Impact factor: 2.339

6.  Combination of linear accelerator-based intensity-modulated total marrow irradiation and myeloablative fludarabine/busulfan: a phase I study.

Authors:  Pritesh Patel; Bulent Aydogan; Matthew Koshy; Dolores Mahmud; Annie Oh; Santosh L Saraf; John G Quigley; Irum Khan; Karen Sweiss; Nadim Mahmud; David J Peace; Vincenzo DeMasi; Azhar M Awan; Ralph R Weichselbaum; Damiano Rondelli
Journal:  Biol Blood Marrow Transplant       Date:  2014-09-16       Impact factor: 5.742

7.  Role of total body irradiation as based on the comparison of preparation regimens for allogeneic bone marrow transplantation for acute leukemia in first complete remission.

Authors:  T Inoue; H Ikeda; H Yamazaki; J T Tang; C Song; T Teshima; S Murayama; M Ohtani; H Shibata; T Masaoka
Journal:  Strahlenther Onkol       Date:  1993-04       Impact factor: 3.621

8.  Patterns of patient specific dosimetry in total body irradiation.

Authors:  Yuichi Akino; Kevin P McMullen; Indra J Das
Journal:  Med Phys       Date:  2013-04       Impact factor: 4.071

9.  Dosimetry in translation total body irradiation technique: a computer treatment planning approach and an experimental study concerning lung sparing.

Authors:  Ch Zabatis; Th Koligliatis; St Xenofos; K Pistevou; K Psarakos; A Haritanti; K Beroukas
Journal:  J BUON       Date:  2008 Apr-Jun       Impact factor: 2.533

10.  National survey of myeloablative total body irradiation prior to hematopoietic stem cell transplantation in Japan: survey of the Japanese Radiation Oncology Study Group (JROSG).

Authors:  Naoya Ishibashi; Toshinori Soejima; Hiroki Kawaguchi; Takeshi Akiba; Masatoshi Hasegawa; Kouichi Isobe; Hitoshi Ito; Michiko Imai; Yasuo Ejima; Masaharu Hata; Keisuke Sasai; Emiko Shimoda; Toshiya Maebayashi; Masahiko Oguchi; Tetsuo Akimoto
Journal:  J Radiat Res       Date:  2018-07-01       Impact factor: 2.724

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  1 in total

1.  Evaluation of Surface Dose and Commissioning of Compensator-Based Total Body Irradiation.

Authors:  Bharath Pandu; D Khanna; P Mohandass; Hima Ninan; Rajadurai Elavarasan; Saro Jacob; Goutham Sunny
Journal:  J Med Phys       Date:  2022-08-05
  1 in total

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